CYP-mediated resistance and cross-resistance to pyrethroids and organophosphates in Aedes aegypti in the presence and absence of kdr

被引:44
作者
Smith, Leticia B. [1 ]
Sears, Colin [1 ]
Sun, Haina [1 ]
Mertz, Robert W. [1 ]
Kasai, Shinji [1 ,2 ]
Scott, Jeffrey G. [1 ]
机构
[1] Cornell Univ, Dept Entomol, 6134 Comstock Hall, Ithaca, NY 14853 USA
[2] Natl Inst Infect Dis, Dept Med Entomol, Shinjuku Ku, 1-23-1 Toyama, Tokyo, Japan
关键词
Insecticide resistance; Aedes aegypti; Cytochrome P450 monooxygenase; Cross-resistance; Pyrethroid; Organophosphate; DIPTERA-CULICIDAE; INSECTICIDE RESISTANCE; PERMETHRIN RESISTANCE; HOUSE-FLY; MOSQUITO; MECHANISMS; STRAIN; DELTAMETHRIN; CYPERMETHRIN; METABOLISM;
D O I
10.1016/j.pestbp.2019.07.011
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Aedes aegypti thrives in urban environments and transmits several debilitating human viral diseases. Thus, our ability to control this mosquito species in endemic areas is of utmost importance. The use of insecticides, mostly pyrethroids and organophosphates (OPs), has long been the primary means of controlling A. aegypti, but widespread insecticide resistance has emerged. The two main mechanisms of pyrethroid resistance in A. aegypti are CYP-mediated detoxification and mutations in the target site, voltage-sensitive sodium channel (Vssc), referred to as knockdown resistance (kdr). Knowledge about the contributions and interactions of these mechanisms to resistance is important for the understanding of the molecular and evolutionary basis of insecticide resistance, and to determine the effectiveness of insecticides. In this study, we address two aims: 1) determine the patterns of CYP-mediated cross-resistance to pyrethroid and OP insecticides, both in the presence and absence of kdr (S989P + V1016G), and 2) determine whether the interaction between the two mechanisms yields a greater than, less than, or additive effect on resistance. We tested seven pyrethroids and four OPs against three congenic strains of A. aegypti: ROCK (susceptible), CYP:ROCK (CR) (resistant due to CYP-mediated detoxification without kdr), and CYP + KDR:ROCK (CKR) (resistant due to both CYPs and kdr), and compared these to the congenic KDR:ROCK strain that was previously reported. We found that resistance ratios (RRs) were variable between pyrethroids and strains, ranging from 6.2- to 42-fold for CR, and 70- to 261-fold for CKR. In general, we found that CYP-mediated resistance alone contributes less to resistance than kdr. The effect of the combined mechanisms on resistance was significantly greater than additive for all pyrethroids except (1R)-trans-fenfluthrin. CYP-mediated pyrethroid resistance conferred cross-resistance to both methyl paraoxon and fenitrothion, and negative cross-resistance to methyl parathion and naled. Based on our results, we recommend that etofenprox and cyfluthrin be avoided for A. aegypti control in areas where these two resistance mechanisms are prevalent.
引用
收藏
页码:119 / 126
页数:8
相关论文
共 69 条
[1]   A method of computing the effectiveness of an insecticide [J].
Abbott, WS .
JOURNAL OF ECONOMIC ENTOMOLOGY, 1925, 18 :265-267
[2]   Combined target site (kdr) mutations play a primary role in highly pyrethroid resistant phenotypes of Aedes aegypti from Saudi Arabia [J].
Al Nazawi, Ashwaq M. ;
Aqili, Jabir ;
Alzahrani, Mohammed ;
McCall, Philip J. ;
Weetman, David .
PARASITES & VECTORS, 2017, 10 :1-10
[3]  
Angelini R, 2007, Euro Surveill, V12
[4]   Sequencing of Culex quinquefasciatus Establishes a Platform for Mosquito Comparative Genomics [J].
Arensburger, Peter ;
Megy, Karine ;
Waterhouse, Robert M. ;
Abrudan, Jenica ;
Amedeo, Paolo ;
Antelo, Beatriz ;
Bartholomay, Lyric ;
Bidwell, Shelby ;
Caler, Elisabet ;
Camara, Francisco ;
Campbell, Corey L. ;
Campbell, Kathryn S. ;
Casola, Claudio ;
Castro, Marta T. ;
Chandramouliswaran, Ishwar ;
Chapman, Sinead B. ;
Christley, Scott ;
Costas, Javier ;
Eisenstadt, Eric ;
Feschotte, Cedric ;
Fraser-Liggett, Claire ;
Guigo, Roderic ;
Haas, Brian ;
Hammond, Martin ;
Hansson, Bill S. ;
Hemingway, Janet ;
Hill, Sharon R. ;
Howarth, Clint ;
Ignell, Rickard ;
Kennedy, Ryan C. ;
Kodira, Chinnappa D. ;
Lobo, Neil F. ;
Mao, Chunhong ;
Mayhew, George ;
Michel, Kristin ;
Mori, Akio ;
Liu, Nannan ;
Naveira, Horacio ;
Nene, Vishvanath ;
Nguyen, Nam ;
Pearson, Matthew D. ;
Pritham, Ellen J. ;
Puiu, Daniela ;
Qi, Yumin ;
Ranson, Hilary ;
Ribeiro, Jose M. C. ;
Roberston, Hugh M. ;
Severson, David W. ;
Shumway, Martin ;
Stanke, Mario .
SCIENCE, 2010, 330 (6000) :86-88
[5]   Gene Amplification, ABC Transporters and Cytochrome P450s: Unraveling the Molecular Basis of Pyrethroid Resistance in the Dengue Vector, Aedes aegypti [J].
Bariami, Vassiliki ;
Jones, Christopher M. ;
Poupardin, Rodolphe ;
Vontas, John ;
Ranson, Hilary .
PLOS NEGLECTED TROPICAL DISEASES, 2012, 6 (06)
[6]   Assessment of insecticide resistance in primary dengue vector, Aedes aegypti (Linn.) from Northern Districts of West Bengal, India [J].
Bharati, Minu ;
Saha, Dhiraj .
ACTA TROPICA, 2018, 187 :78-86
[7]   The global distribution and burden of dengue [J].
Bhatt, Samir ;
Gething, Peter W. ;
Brady, Oliver J. ;
Messina, Jane P. ;
Farlow, Andrew W. ;
Moyes, Catherine L. ;
Drake, John M. ;
Brownstein, John S. ;
Hoen, Anne G. ;
Sankoh, Osman ;
Myers, Monica F. ;
George, Dylan B. ;
Jaenisch, Thomas ;
Wint, G. R. William ;
Simmons, Cameron P. ;
Scott, Thomas W. ;
Farrar, Jeremy J. ;
Hay, Simon I. .
NATURE, 2013, 496 (7446) :504-507
[8]  
Bisset J, 2006, J MED ENTOMOL, V43, P1185, DOI 10.1603/0022-2585(2006)43[1185:SOIAAA]2.0.CO
[9]  
2
[10]   Characterization of Anopheles minimus CYP6AA3 expressed in a recombinant baculovirus system [J].
Boonsuepsakul, Soamrutai ;
Luepromchai, Ekawan ;
Rongnoparut, Pornpimol .
ARCHIVES OF INSECT BIOCHEMISTRY AND PHYSIOLOGY, 2008, 69 (01) :13-21